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Updated: Oct 25, 2025

Pre-clinical Evaluation of Tyrosine Kinase Inhibitors for Treatment of Acute Leukemia
Published on: September 18, 2013
[The Effect and Mechanism of Novel Telomerase Inhibitor Nilo 22 on Leukemia Cells]
Jing-Jing Yin1, Qian Tang2, Jia-Li Gu1
1State Key Laboratory of Experimental Hematology, National Clinical Research Center for Blood Diseases, Institute of Hematology & Blood Disease Hospital, Chinese Academy of Medical Sciences & Peking Union Medical College, Tianjin 300020, China.
Objective:
To investigate the cytotoxic effect and its mechanism of the micromolecule compound on the leukemia cells.
Methods:
The cytotoxic effects of 28 Nilotinib derivatives on K562, KA, KG, HA and 32D cell lines were detected by MTT assays, and the compound Nilo 22 was screen out. Cell apoptosis and cell cycle on leukemia cells were detected by flow cytometry. The effect of compound screened out on leukemogenesis potential of MLL-AF9 leukemia mice GFP+ cells was tested by colony-forming units assays (CFU). The cytotoxic effect was further detected by transplant assays ex vivo. Telomerase activity assay, C-circle assay were used to measure the effects of compound on the length mechanism of telomere, RT-PCR was used to detected the changes of telomere.
Results:
Nilo 22 serves as the most outstanding candidate out of 28 Nilotinib derivatives, which impairs leukemia cell lines, but spares normal hematopoietic cell line. Comparing with Nilotinib, Nilo 22 could induce the apoptosis of GFP+ cells significantly, slightly arrests the cell cycle at G0/G1 phase, and significantly inhibits colony formation and prolong the progression in MLL-AF9 leukemia mice model. The expression showed that the compound could slow the disease progression in MLL-AF9 leukemia mice significantly. Mechanistically, Nilo 22 could reduce the length of telomere by inhibiting telomerase activity and alternative lengthening of telomere (ALT).
Conclusion:
Nilo 22 shows a significant cytotoxic effect on mice and human leukemia cells, especially for drug resistance cells. Nilo 22 is a promising anti-leukemia agent to solve the common clinical problems of drug resistance and relapse of leukemia.
Insights
A novel compound, Nilo 22, derived from Nilotinib, effectively targets leukemia cells, inducing apoptosis and inhibiting growth. This promising agent shows potential in overcoming drug resistance and relapse in leukemia treatment.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Leukemia remains a significant health challenge, often complicated by drug resistance and relapse.
- Existing treatments like Nilotinib have limitations, necessitating the development of novel therapeutic agents.
Purpose of the Study:
- To investigate the cytotoxic effects and underlying mechanisms of a novel micromolecule compound on leukemia cells.
- To identify a potent anti-leukemia agent with improved efficacy and reduced toxicity compared to existing therapies.
Main Methods:
- Screening of 28 Nilotinib derivatives using MTT assays on various leukemia cell lines.
- Flow cytometry to assess apoptosis and cell cycle progression.
- Colony-forming unit assays and ex vivo transplant assays in a MLL-AF9 leukemia mouse model.
- Telomere length analysis using telomerase activity assays, C-circle assays, and RT-PCR.
Main Results:
- Nilo 22 demonstrated significant cytotoxicity against leukemia cell lines while sparing normal hematopoietic cells.
- Nilo 22 induced apoptosis, G0/G1 cell cycle arrest, and inhibited colony formation in leukemia cells.
- In vivo studies showed Nilo 22 slowed disease progression in MLL-AF9 leukemia mice and reduced telomere length by inhibiting telomerase and ALT.
Conclusions:
- Nilo 22 exhibits potent anti-leukemia activity against both mouse and human leukemia cells, including drug-resistant types.
- Nilo 22 represents a promising therapeutic candidate for addressing drug resistance and relapse in leukemia patients.
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